首页> 外文会议>International Conference on Image and Vision Computing New Zealand >Weakly supervised 3D reconstruction of the knee joint from MR images using a volumetric Active Appearance Model
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Weakly supervised 3D reconstruction of the knee joint from MR images using a volumetric Active Appearance Model

机译:使用体积主动外观模型从MR图像对膝关节进行弱监督3D重建

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Active Appearance Models (AAM), have been widely used for the segmentation of anatomical structures in 3D medical images. Building the AAM usually requires the manual segmentation of a training set. In this paper, we propose to reduce this manual segmentation by building a volumetric AAM (vAAM) from MR images. These images are converted to a tetrahedral mesh representation rather than a voxel representation. Tetrahedral meshes are generated so that they represent the underlying image structures. The vAAM is iteratively built using the minimum description length principle (MDL). The generated model provides an anatomical correspondence between the tetrahedral meshes that are generated from MR images within the training set. Thus any manual segmentation performed on a single MR image can be mapped to other MR images. The segmentation of a query image is performed automatically by adapting the vAAM to this image. After the segmentation step, the 3D reconstruction of the knee surface is simply performed by extracting faces that are shared by adjacent regions.
机译:活动外观模型(AAM)已被广泛用于3D医学图像中解剖结构的分割。建立AAM通常需要对训练集进行手动分割。在本文中,我们建议通过从MR图像构建体积AAM(vAAM)来减少这种手动分割。这些图像将转换为四面体网格表示而不是体素表示。生成四面体网格,以便它们表示基础图像结构。 vAAM是使用最小描述长度原则(MDL)迭代构建的。生成的模型提供了从训练集中的MR图像生成的四面体网格之间的解剖学对应关系。因此,可以将在单个MR图像上执行的任何手动分割都映射到其他MR图像。通过使vAAM适应该图像,可以自动执行查询图像的分割。在分割步骤之后,只需提取相邻区域共享的面部,即可简单地执行膝盖表面的3D重建。

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